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Nature· 2025Q1

Atomically accurate de novo design of antibodies with RFdiffusion

Nathaniel R. Bennett, Joseph L. Watson, Robert J. Ragotte, Andrew J. Borst et al.

Short summary

A new computational method using RFdiffusion and yeast display enables the de novo design of antibodies (VHHs, scFvs, full antibodies) that bind to user-specified epitopes with atomic-level precision.

AI-generated from the title and abstract; the full text is not read.

Key points

  • RFdiffusion combined with yeast display enables de novo design of epitope-specific antibodies (VHHs, scFvs, full antibodies).
  • Cryo-electron microscopy confirmed atomic accuracy of designed antibody binding poses for influenza haemagglutinin and TcdB.
  • Initial designs with tens to hundreds of nanomolar K d were affinity matured to single-digit nanomolar binders.
  • The framework allows for precise structural and epitope targeting in fully de novo designed antibodies.

AI-generated from the title and abstract; the full text is not read.

Abstract

Abstract Despite the central role of antibodies in modern medicine, no method currently exists to design novel, epitope-specific antibodies entirely in silico. Instead, antibody discovery currently relies on immunization, random library screening or the isolation of antibodies directly from patients 1 . Here we demonstrate that combining computational protein design using a fine-tuned RFdiffusion 2 network with yeast display screening enables the de novo generation of antibody variable heavy chains (VHHs), single-chain variable fragments (scFvs) and full antibodies that bind to user-specified epitopes with atomic-level precision. We experimentally characterize VHH binders to four disease-relevant epitopes. Cryo-electron microscopy confirms the binding pose of designed VHHs targeting influenza haemagglutinin and Clostridium difficile toxin B (TcdB). A high-resolution structure of the influenza-targeting VHH confirms atomic accuracy of the designed complementarity-determining regions (CDRs). Although initial computational designs exhibit modest affinity (tens to hundreds of nanomolar K d ), affinity maturation using OrthoRep 3 enables production of single-digit nanomolar binders that maintain the intended epitope selectivity. We further demonstrate the de novo design of scFvs to TcdB and a PHOX2B peptide–MHC complex by combining designed heavy-chain and light-chain CDRs. Cryo-electron microscopy confirms the binding pose for two distinct TcdB scFvs, with high-resolution data for one design verifying the atomically accurate design of the conformations of all six CDR loops. Our approach establishes a framework for the computational design, screening and characterization of fully de novo antibodies with atomic-level precision in both structure and epitope targeting.

The authors' abstract, as published at the source. Nature, 2025 · DOI ↗

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Field: Radiology, Nuclear Medicine and Imaging

Radiology, Nuclear Medicine and ImagingMedicine